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首页> 外文期刊>Journal of Materials Processing Technology >Investigations on phase transformation and mechanical characteristics of laser additive manufactured TiNiCu shape memory alloy structures
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Investigations on phase transformation and mechanical characteristics of laser additive manufactured TiNiCu shape memory alloy structures

机译:激光添加TiNiCu形状记忆合金结构的相变和力学性能研究

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摘要

This paper reports laser additive manufacturing (LAM) of shape memory alloyed (SMA) structures using three premixed compositions of TiNiCu (Ti50Ni(50-x)Cux(x = 5,15 and 25)). A 2 kW fiber laser based additive manufacturing system was used. First, the processing parameters were optimized for defect free deposition, subsequently the optimized parameters were used for the LAM of the structures. These fabricated structures were characterized using scanning electron microscopy (SEM), atomic force microscopy (AFM), differential scanning calorimeter (DSC), X-ray diffraction (XRD), micro-hardness measurement and compression testing. SEM and AFM revealed the fine grain structures with good surface morphological characteristics (<5 mu m Ra value) for TiNiCu5. The ultimate compressive strength, modulus of elasticity and micro-hardness values for this sample was 451 +/- 15 MPa, modulus of 28 +/- 2 GPa and 237 +/- 12 VHN, respectively. XRD confirmed the presence of two phases austenite and martensite in the LAM samples and DSC demonstrated low hysteresis between 22 degrees C and 25 degrees C, a prime requirement of SMA. The study paved a way for LAM of complex shapes using TiNiCu with all the prerequisite properties of SMA. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文报道了使用TiNiCu的三种预混合成分(Ti50Ni(50-x)Cux(x = 5,15和25))对形状记忆合金(SMA)结构进行激光增材制造(LAM)。使用了基于2 kW光纤激光器的增材制造系统。首先,优化工艺参数以实现无缺陷沉积,然后将优化的参数用于结构的LAM。这些制造的结构使用扫描电子显微镜(SEM),原子力显微镜(AFM),差示扫描量热仪(DSC),X射线衍射(XRD),显微硬度测量和压缩测试进行了表征。 SEM和AFM揭示了TiNiCu5的细晶粒结构具有良好的表面形态特征(<5μmRa值)。该样品的极限抗压强度,弹性模量和显微硬度值分别为451 +/- 15 MPa,28 +/- 2 GPa和237 +/- 12 VHN。 XRD证实了LAM样品中存在两相奥氏体和马氏体,而DSC显示出22摄氏度至25摄氏度之间的低磁滞现象,这是SMA的主要要求。该研究为使用具有SMA所有先决条件的TiNiCu的复杂形状的LAM铺平了道路。 (C)2016 Elsevier B.V.保留所有权利。

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